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Lecture 3 1 st & 2 nd Law Analysis for Combustion Process

Lecture 3 1 st & 2 nd Law Analysis for Combustion Process. First-Law Analysis of Steady-Flow Combustion.

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Lecture 3 1 st & 2 nd Law Analysis for Combustion Process

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  1. Lecture 3 1st & 2nd Law Analysis for Combustion Process

  2. First-Law Analysis of Steady-Flow Combustion Liquid propane (C3H8) enters a combustion chamber at 25°C at a rate of 0.05 kg/min where it is mixed and burned with 50 percent excess air that enters the combustion chamber at 7°C, as shown in Fig. 15–23. An analysis of the combustion gases reveals that all the hydrogen in the fuel burns to H2O but only 90 percent of the carbon burns to CO2, with the remaining 10 percent forming CO. If the exit temperature of the combustion gases is 1500 K, determine (a) the mass flow rate of air and (b) the rate of heat transfer from the combustion chamber.

  3. Solution Liquid propane is burned steadily with excess air. The mass flow rate of air and the rate of heat transfer are to be determined. Assumptions 1 Steady operating conditions exist. 2 Air and the combustion gases are ideal gases. 3 Kinetic and potential energies are negligible.

  4. Analysis We note that all the hydrogen in the fuel burns to H2O but 10 percent of the carbon burns incompletely and forms CO. Also, the fuel is burned with excess air and thus there is some free O2 in the product gases. The theoretical amount of air is determined from the stoichiometric reaction to be

  5. Then the balanced equation for the actual combustion process with 50 percent excess air and some CO in the products becomes (a) The air–fuel ratio for this combustion process is

  6. (b) The heat transfer for this steady-flow combustion process is determined from the steady-flow energy balance Eout = Ein applied on the combustion chamber per unit mole of the fuel,

  7. The hfo of liquid propane is obtained by subtracting the hfg of propane at 25°C from the hf ° of gas propane. Substituting gives

  8. Thus 363,880 kJ of heat is transferred from the combustion chamber for each kmol (44 kg) of propane. This corresponds to 363,880/44 8270 kJ of heat loss per kilogram of propane. Then the rate of heat transfer for a mass flow rate of 0.05 kg/min for the propane becomes

  9. ADIABATIC FLAME TEMPERATURE In the absence of any work interactions and any changes in kinetic or potential energies, the chemical energy released during a combustion process either is lost as heat to the surroundings or is used internally to raise the temperature of the combustion products. The smaller the heat loss, the larger the temperature rise. In the limiting case of no heat loss to the surroundings (Q = 0), the temperature of the products reaches a maximum, which is called the adiabatic flame or adiabatic combustion temperature of the reaction (Fig. 15–25).

  10. Hprod = Hreact

  11. Adiabatic Flame Temperature in Steady Combustion Liquid octane (C8H18) enters the combustion chamber of a gas turbine steadily at 1 atm and 25°C, and it is burned with air that enters the combustion chamber at the same state, as shown in Fig. 15–27. Determine the adiabatic flame temperature for (a) complete combustion with 100 percent theoretical air, (b) complete combustion with 400 percent theoretical air, (c) incomplete combustion (some CO in the products) with 90 percent theoretical air.

  12. Solution Liquid octane is burned steadily. The adiabatic flame temperature is to be determined for different cases. Assumptions 1 This is a steady-flow combustion process. 2 The combustion chamber is adiabatic. 3 There are no work interactions. 4 Air and the combustion gases are ideal gases. 5 Changes in kinetic and potential energies are negligible.

  13. Analysis (a) The balanced equation for the combustion process with the theoretical amount of air is The adiabatic flame temperature relation Hprod= Hreact in this case reduces to

  14. since all the reactants are at the standard reference state and hf° 0 for O2 and N2. The hf° and h values of various components at 298 K are

  15. It appears that we have one equation with three unknowns. Actually we have only one unknown; the temperature of the products; Tprod- since h=h(T) for ideal gases. Therefore, we have to use an equation solver such as EES or a trial-and-error approach to determine the temperature of the products. Tprod 2395 K.

  16. (b) The balanced equation for the complete combustion process with 400 percent theoretical air is By following the procedure used in (a), the adiabatic flame temperature in this case is determined to be Tprod 962 K. Notice that the temperature of the products decreases significantly as a result of using excess air.

  17. (c) The balanced equation for the incomplete combustion process with 90 percent theoretical air is Following the procedure used in (a), we find the adiabatic flame temperature in this case to be Tprod = 2236 K.

  18. DiscussionNotice that the adiabatic flame temperature decreases as a result of incomplete combustion or using excess air. Also, the maximum adiabatic flame temperature is achieved when complete combustion occurs with the theoretical amount of air.

  19. ENTROPY CHANGE OF REACTING SYSTEMS So far we have analyzed combustion processes from the conservation of mass and the conservation of energy points of view. The thermodynamic analysis of a process is not complete, however, without the examination of the second-law aspects. Of particular interest are the exergy and exergy destruction, both of which are related to entropy.

  20. The entropy balance relations are equally applicable to both reacting and non-reacting systems provided that the entropies of individual constituents are evaluated properly using a common basis. The entropy balance for any system (including reacting systems) undergoing any process can be expressed as

  21. Using quantities per unit mole of fuel and taking the positive direction of heat transfer to be to the system, the entropy balance relation can be expressed more explicitly for a closed or steady-flow reacting system as (Fig. 15–28) where Tk is temperature at the boundary where Qk crosses it.

  22. For an adiabatic process (Q = 0), the entropy transfer term drops out The total entropy generated during a process can be determined by applying the entropy balance to an extended system that includes the system itself and its immediate surroundings where external irreversibilities might be occurring.

  23. For the component i of an ideal-gas mixture, this relation can be written as where P0 1 atm, Pi is the partial pressure, yi is the mole fraction of the component, and Pm is the total pressure of the mixture.

  24. If a gas mixture is at a relatively high pressure or low temperature, the deviation from the ideal-gas behavior should be accounted for by incorporating more accurate equations of state or the generalized entropy charts.

  25. SECOND-LAW ANALYSIS OF REACTING SYSTEMS Once the total entropy change or the entropy generation is evaluated, the exergy destroyed Xdestroyed associated with a chemical reaction can be determined from where T0 is the thermodynamic temperature of the surroundings.

  26. The reversible work Wrev represents the maximum work that can be done during a process. In the absence of any changes in kinetic and potential energies, the reversible work relation for a steady-flow combustion process that involves heat transfer with only the surroundings at T0 can be obtained by replacing the enthalpy terms by

  27. which is, by definition, the Gibbs function of a unit mole of a substance at temperature T0. The Wrev relation in this case can be written as

  28. where g –°f is the Gibbs function of formation (g –°f 0 for stable elements like N2 and O2 at the standard reference state of 25°C and 1 atm, just like the enthalpy of formation) and gT0 - g° represents the value of the sensible Gibbs function of a substance at temperature T0 relative to the standard reference state.

  29. Example : Second-Law Analysis of Adiabatic Combustion Methane (CH4) gas enters a steady-flow adiabatic combustion chamber at 25°C and 1 atm. It is burned with 50 percent excess air that also enters at 25°C and 1 atm, as shown in Fig. 15–33. Assuming complete combustion, determine (a) the temperature of the products, (b) the entropy generation, (c) the reversible work and exergy destruction. Assume that T0 = 298 K and the products leave the combustion chamber at 1 atm pressure.

  30. Solution Methane is burned with excess air in a steady-flow combustion chamber. The product temperature, entropy generated, reversible work, and exergy destroyed are to be determined. Assumptions 1 Steady-flow conditions exist during combustion. 2 Air and the combustion gases are ideal gases. 3 Changes in kinetic and potential energies are negligible. 4 The combustion chamber is adiabatic and thus there is no heat transfer. 5 Combustion is complete.

  31. Analysis (a) The balanced equation for the complete combustion process with 50 percent excess air is Under steady-flow conditions, the adiabatic flame temperature is determined from Hprod = Hreact, which reduces to

  32. Substituting, we have

  33. which yields By trial and error, the temperature of the products is found to be

  34. (b) Noting that combustion is adiabatic, the entropy generation during this process is determined from The CH4 is at 25°C and 1 atm, and thus its absolute entropy is s– for CH4 =186.16 kJ/kmol K (Table A–26). The entropy values listed in the ideal-gas tables are for 1 atm pressure. Both the air and the product gases are at a total pressure of 1 atm, but the entropies are to be calculated at the partial pressure of the components, which is equal to Pi =yi Ptotal, where yi is the mole fraction of component i.

  35. The exergy destruction or irreversibility associated with this process is determined from That is, 288 MJ of work potential is wasted during this combustion process for each kmol of methane burned. This example shows that even complete combustion processes are highly irreversible.

  36. This process involves no actual work. Therefore, the reversible work and exergy destroyed are identical: That is, 288 MJ of work could be done during this process but is not. Instead, the entire work potential is wasted.

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